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Published on: September 18, 2017
Membrane-Associated RING-CH-Type Finger 6 Protects against Hypertension-Induced Cardiac Remodeling by Suppressing
Rui Hao1, Xin Wang2, Changhu Liu3
1Department of Cardiology and Hypertension, Central Hospital Affiliated to Shandong First Medical University, No. 105 Jiefang Road, Lixia District, Jinan, 250013, Shandong Province, China.
Insights
Membrane-associated RING-CH-type finger 6 (Marchf6) protects heart cells from ferroptosis, reducing damage in hypertension-induced heart failure. Overexpressing Marchf6 improves cardiac function by degrading ACSL4 protein, offering a new therapeutic target.
Area of Science:
- Cardiovascular Biology
- Cellular Physiology
- Molecular Mechanisms of Disease
Background:
- Hypertension is a major risk factor for cardiovascular disorders, including heart failure.
- Ferroptosis-induced cardiomyocyte loss contributes to myocardial remodeling in heart failure.
- Membrane-associated RING-CH-type finger 6 (Marchf6) is a novel gene regulating ferroptosis, but its role in hypertension-induced heart failure is unknown.
Purpose of the Study:
- To investigate the role of Marchf6 in regulating cardiomyocyte ferroptosis.
- To explore the impact of Marchf6 on hypertension-induced myocardial remodeling.
- To elucidate the underlying molecular mechanisms involving Marchf6 and ferroptosis.
Main Methods:
- Utilized Angiotensin II (Ang II) stimulated animal and cellular models of hypertension.
- Manipulated Marchf6 expression (overexpression and knockdown) to assess ferroptosis sensitivity.
- Analyzed cardiac function, cardiomyocyte hypertrophy, fibrosis, and ferroptosis indicators.
- Investigated the interaction between Marchf6 and ACSL4 protein stability.
Main Results:
- Marchf6 levels were decreased in Ang II-stimulated models.
- Marchf6 overexpression protected against ferroptosis and improved cardiac function, reducing hypertrophy and fibrosis.
- Marchf6 promoted ACSL4 protein degradation, and ACSL4 overexpression reversed Marchf6's protective effects.
Conclusions:
- Marchf6 mitigates ferroptosis by enhancing ACSL4 protein degradation, thereby alleviating hypertension-induced myocardial remodeling.
- Marchf6 represents a novel regulatory mechanism in ferroptosis-driven myocardial remodeling.
- Marchf6 emerges as a potential therapeutic target for hypertension-related cardiac diseases.
Abstract:
Hypertension serves as a major contributing factor to various cardiovascular disorders, including heart failure. Ferroptosis-induced cardiomyocyte loss is recognized as a novel contributor to myocardial remodeling in heart failure. Membrane-associated RING-CH-type finger 6 (Marchf6) is a newly identified gene that regulates ferroptosis and is implicated in various disease processes. However, the role of Marchf6 in modulating cardiomyocyte ferroptosis and its impact on hypertension-induced myocardial remodeling remain unexplored. This study aimed to investigate whether Marchf6 influences myocardial remodeling through the regulation of ferroptosis and to explore the underlying molecular mechanisms. Our findings indicated that there was a decrease in Marchf6 levels in both animal and cellular models established through Angiotensin II (Ang II) stimulation. Overexpression of Marchf6 conferred resistance to Erastin-induced ferroptosis, while Marchf6 knockdown increased sensitivity to ferroptosis. In the Ang II cellular model, Marchf6 overexpression enhanced cell viability, inhibited cardiomyocyte hypertrophy, and reversed ferroptosis-related indicators, whereas Marchf6 knockdown exhibited opposite effects. Animal model studies indicated that Marchf6 overexpression significantly improved cardiac function, alleviated myocardial hypertrophy and fibrosis, and suppressed ferroptotic death levels. Mechanistic investigations revealed that Marchf6 significantly regulated the stability of ACSL4 protein, with Marchf6 overexpression accelerating ACSL4 protein degradation. In cardiomyocytes overexpressing Marchf6, ACSL4 overexpression notably reversed the regulatory impact of Marchf6 on cardiac cell hypertrophy and ferroptosis triggered by Ang II. Collectively, our findings suggest that Marchf6 may mitigate cardiomyocyte ferroptosis by promoting ACSL4 degradation, thereby alleviating hypertension-induced myocardial remodeling. This study not only uncovers a novel regulatory mechanism of cardiomyocyte ferroptosis in myocardial remodeling but also presents a viable target for the management of hypertension-related cardiac diseases.
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